R3 0.5 mA 3 k2 3.5 V Mз 1.63 V M4 R; R2 M1 M2 OV 1 k2 10 k2 R1 10 k2 R4 13 k2 2 mA 1 mA = 4 mA/V?, VrN = 1 V, Figure 18.12 Three-stage MOSFET series-shunt feedback amplifier (K, = 10 mA/V?, K, VTP = -1 V).
R3 0.5 mA 3 k2 3.5 V Mз 1.63 V M4 R; R2 M1 M2 OV 1 k2 10 k2 R1 10 k2 R4 13 k2 2 mA 1 mA = 4 mA/V?, VrN = 1 V, Figure 18.12 Three-stage MOSFET series-shunt feedback amplifier (K, = 10 mA/V?, K, VTP = -1 V).
Introductory Circuit Analysis (13th Edition)
13th Edition
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:Robert L. Boylestad
Chapter1: Introduction
Section: Chapter Questions
Problem 1P: Visit your local library (at school or home) and describe the extent to which it provides literature...
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Question
For the circuit as shown, find R3 to set ID3 = 0.8 mA with VDD = VSS = 10 V, and ID4 = 4 mA. Calculate a new R4 to maintain Vo = 0 V. Calculate the poles of the amplifier and calculate RZ to cancel the right-half plane zero. Find the unitygain frequency such that the phase margin is set to 70◦. For the phase margin calculation, assume the dominant pole contributes 90◦ of phase shift at the unity-gain frequency. Calculate the CC required to achieve the desired unity-gain frequency and phase margin.

Transcribed Image Text:R3
0.5 mA
3 k2
3.5 V
Mз
1.63 V
M4
R;
R2
M1
M2
OV
1 k2
10 k2
R1
10 k2
R4
13 k2
2 mA
1 mA
= 4 mA/V?, VrN = 1 V,
Figure 18.12 Three-stage MOSFET series-shunt feedback amplifier (K, = 10 mA/V?, K,
VTP = -1 V).
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